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一种具有扩大内径的线性离子阱,以改善荧光光谱的光学通路。

A Linear Ion Trap with an Expanded Inscribed Diameter to Improve Optical Access for Fluorescence Spectroscopy.

作者信息

Rajagopal Vaishnavi, Stokes Chris, Ferzoco Alessandra

机构信息

The Rowland Institute at Harvard University, Cambridge, MA, 02142, USA.

出版信息

J Am Soc Mass Spectrom. 2018 Feb;29(2):260-269. doi: 10.1007/s13361-017-1763-3. Epub 2017 Aug 18.

Abstract

We report a custom-geometry linear ion trap designed for fluorescence spectroscopy of gas-phase ions at ambient to cryogenic temperatures. Laser-induced fluorescence from trapped ions is collected from between the trapping rods, orthogonal to the excitation laser that runs along the axis of the linear ion trap. To increase optical access to the ion cloud, the diameter of the round trapping rods is 80% of the inscribed diameter, rather than the roughly 110% used to approximate purely quadrupolar electric fields. To encompass as much of the ion cloud as possible, the first collection optic has a 25.4 mm diameter and a numerical aperture of 0.6. The choice of geometry and collection optics yields 10 detected photons/s from trapped rhodamine 6G ions. The trap is coupled to a closed-cycle helium refrigerator, which in combination with two 50 Ohm heaters enables temperature control to below 25 K on the rod electrodes. The purpose of the instrument is to broaden the applicability of fluorescence spectroscopy of gas-phase ions to cases where photon emission is a minority relaxation pathway. Such studies are important to understand how the microenvironment of a chromophore influences excited state charge transfer processes. Graphical Abstract ᅟ.

摘要

我们报告了一种定制几何形状的线性离子阱,该离子阱专为在环境温度至低温下对气相离子进行荧光光谱分析而设计。捕获离子的激光诱导荧光是从捕获棒之间收集的,与沿线性离子阱轴运行的激发激光正交。为了增加对离子云的光学访问,圆形捕获棒的直径为内切直径的80%,而不是用于近似纯四极电场的约110%。为了尽可能多地覆盖离子云,第一个收集光学器件的直径为25.4毫米,数值孔径为0.6。几何形状和收集光学器件的选择使得从捕获的若丹明6G离子中每秒能检测到10个光子。该离子阱与一个闭环氦制冷机相连,该制冷机与两个50欧姆的加热器相结合,能够将棒状电极的温度控制在25K以下。该仪器的目的是将气相离子荧光光谱的适用性扩展到光子发射是少数弛豫途径的情况。此类研究对于理解发色团的微环境如何影响激发态电荷转移过程非常重要。图形摘要ᅟ。

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